{"title":"鸟类 Z-DNA 密度及其进化意义的综合研究。","authors":"Yu-Ren Wang, Shao-Ming Chang, Jinn-Jy Lin, Hsiao-Chian Chen, Lo-Tung Lee, Dien-Yu Tsai, Shih-Da Lee, Chung-Yu Lan, Chuang-Rung Chang, Chih-Feng Chen, Chen Siang Ng","doi":"10.1186/s12864-024-11039-x","DOIUrl":null,"url":null,"abstract":"<p><strong>Background: </strong>Z-DNA, a left-handed helical form of DNA, plays a significant role in genomic stability and gene regulation. Its formation, associated with high GC content and repetitive sequences, is linked to genomic instability, potentially leading to large-scale deletions and contributing to phenotypic diversity and evolutionary adaptation.</p><p><strong>Results: </strong>In this study, we analyzed the density of Z-DNA-prone motifs of 154 avian genomes using the non-B DNA Motif Search Tool (nBMST). Our findings indicate a higher prevalence of Z-DNA motifs in promoter regions across all avian species compared to other genomic regions. A negative correlation was observed between Z-DNA density and developmental time in birds, suggesting that species with shorter developmental periods tend to have higher Z-DNA densities. This relationship implies that Z-DNA may influence the timing and regulation of development in avian species. Furthermore, Z-DNA density showed associations with traits such as body mass, egg mass, and genome size, highlighting the complex interactions between genome architecture and phenotypic characteristics. Gene Ontology (GO) analysis revealed that Z-DNA motifs are enriched in genes involved in nucleic acid binding, kinase activity, and translation regulation, suggesting a role in fine-tuning gene expression essential for cellular functions and responses to environmental changes. Additionally, the potential of Z-DNA to drive genomic instability and facilitate adaptive evolution underscores its importance in shaping phenotypic diversity.</p><p><strong>Conclusions: </strong>This study emphasizes the role of Z-DNA as a dynamic genomic element contributing to gene regulation, genomic stability, and phenotypic diversity in avian species. Future research should experimentally validate these associations and explore the molecular mechanisms by which Z-DNA influences avian biology.</p>","PeriodicalId":9030,"journal":{"name":"BMC Genomics","volume":"25 1","pages":"1123"},"PeriodicalIF":3.5000,"publicationDate":"2024-11-21","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"A comprehensive study of Z-DNA density and its evolutionary implications in birds.\",\"authors\":\"Yu-Ren Wang, Shao-Ming Chang, Jinn-Jy Lin, Hsiao-Chian Chen, Lo-Tung Lee, Dien-Yu Tsai, Shih-Da Lee, Chung-Yu Lan, Chuang-Rung Chang, Chih-Feng Chen, Chen Siang Ng\",\"doi\":\"10.1186/s12864-024-11039-x\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p><strong>Background: </strong>Z-DNA, a left-handed helical form of DNA, plays a significant role in genomic stability and gene regulation. 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Furthermore, Z-DNA density showed associations with traits such as body mass, egg mass, and genome size, highlighting the complex interactions between genome architecture and phenotypic characteristics. Gene Ontology (GO) analysis revealed that Z-DNA motifs are enriched in genes involved in nucleic acid binding, kinase activity, and translation regulation, suggesting a role in fine-tuning gene expression essential for cellular functions and responses to environmental changes. Additionally, the potential of Z-DNA to drive genomic instability and facilitate adaptive evolution underscores its importance in shaping phenotypic diversity.</p><p><strong>Conclusions: </strong>This study emphasizes the role of Z-DNA as a dynamic genomic element contributing to gene regulation, genomic stability, and phenotypic diversity in avian species. 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引用次数: 0
摘要
背景:Z-DNA是DNA的一种左旋螺旋形式,在基因组稳定性和基因调控中发挥着重要作用。它的形成与高 GC 含量和重复序列有关,与基因组的不稳定性有关,可能导致大规模的缺失,有助于表型多样性和进化适应:在这项研究中,我们使用非 B DNA 动机搜索工具(nBMST)分析了 154 个禽类基因组中 Z-DNA 易感动机的密度。我们的研究结果表明,与其他基因组区域相比,所有鸟类物种的启动子区域中Z-DNA图案的流行率更高。在鸟类中,Z-DNA 密度与发育时间呈负相关,表明发育时间较短的物种往往具有较高的 Z-DNA 密度。这种关系意味着,Z-DNA 可能会影响鸟类的发育时间和发育调节。此外,Z-DNA密度还与体质量、卵质量和基因组大小等性状有关,凸显了基因组结构与表型特征之间复杂的相互作用。基因本体(GO)分析表明,Z-DNA图案富集于涉及核酸结合、激酶活性和翻译调控的基因中,这表明Z-DNA图案在微调对细胞功能至关重要的基因表达和对环境变化的反应中发挥作用。此外,Z-DNA 还具有驱动基因组不稳定性和促进适应性进化的潜力,这凸显了它在塑造表型多样性方面的重要性:本研究强调了 Z-DNA 作为动态基因组元素在鸟类物种中对基因调控、基因组稳定性和表型多样性所起的作用。未来的研究应通过实验验证这些关联,并探索 Z-DNA 影响鸟类生物学的分子机制。
A comprehensive study of Z-DNA density and its evolutionary implications in birds.
Background: Z-DNA, a left-handed helical form of DNA, plays a significant role in genomic stability and gene regulation. Its formation, associated with high GC content and repetitive sequences, is linked to genomic instability, potentially leading to large-scale deletions and contributing to phenotypic diversity and evolutionary adaptation.
Results: In this study, we analyzed the density of Z-DNA-prone motifs of 154 avian genomes using the non-B DNA Motif Search Tool (nBMST). Our findings indicate a higher prevalence of Z-DNA motifs in promoter regions across all avian species compared to other genomic regions. A negative correlation was observed between Z-DNA density and developmental time in birds, suggesting that species with shorter developmental periods tend to have higher Z-DNA densities. This relationship implies that Z-DNA may influence the timing and regulation of development in avian species. Furthermore, Z-DNA density showed associations with traits such as body mass, egg mass, and genome size, highlighting the complex interactions between genome architecture and phenotypic characteristics. Gene Ontology (GO) analysis revealed that Z-DNA motifs are enriched in genes involved in nucleic acid binding, kinase activity, and translation regulation, suggesting a role in fine-tuning gene expression essential for cellular functions and responses to environmental changes. Additionally, the potential of Z-DNA to drive genomic instability and facilitate adaptive evolution underscores its importance in shaping phenotypic diversity.
Conclusions: This study emphasizes the role of Z-DNA as a dynamic genomic element contributing to gene regulation, genomic stability, and phenotypic diversity in avian species. Future research should experimentally validate these associations and explore the molecular mechanisms by which Z-DNA influences avian biology.
期刊介绍:
BMC Genomics is an open access, peer-reviewed journal that considers articles on all aspects of genome-scale analysis, functional genomics, and proteomics.
BMC Genomics is part of the BMC series which publishes subject-specific journals focused on the needs of individual research communities across all areas of biology and medicine. We offer an efficient, fair and friendly peer review service, and are committed to publishing all sound science, provided that there is some advance in knowledge presented by the work.